English

Measurement-based Dynamical Decoupling for Fidelity Preservation on Large-scale Quantum Processors

Quantum Physics 2025-11-18 v1

Abstract

Dynamical decoupling (DD) is a key technique for suppressing decoherence and preserving the performance of quantum algorithms. We introduce a measurement-based DD (MDD) protocol that determines control unitary gates from partial measurements of noisy subsystems, with measurement overhead scaling linearly with the number of subsystems. We prove that, under local energy relaxation and dephasing noise, MDD achieves the maximum entanglement fidelity attainable by any DD scheme based on bang-bang operations to first order in evolution time. On the IBM Eagle processor, MDD achieved up to a 450450-fold improvement in the success probability of a 1414-qubit quantum Fourier transform, and improved the accuracy of ground-state energy estimation for N2N_2 in the 5656-qubit sample-based quantum diagonalization compared with the standard XX-pulse DD. These results establish MDD as a scalable and effective approach for suppressing decoherence in large-scale quantum algorithms.

Keywords

Cite

@article{arxiv.2511.13532,
  title  = {Measurement-based Dynamical Decoupling for Fidelity Preservation on Large-scale Quantum Processors},
  author = {Jeongwoo Jae and Changwon Lee and Juzar Thingna and Yeong-Dae Kwon and Daniel K. Park},
  journal= {arXiv preprint arXiv:2511.13532},
  year   = {2025}
}

Comments

22 pages, 15 figures

R2 v1 2026-07-01T07:41:28.552Z